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Updated: May 5, 2026

Systems Biology of Metabolic Regulation by Estrogen Receptor Signaling in Breast Cancer
Published on: March 17, 2016
Metabolic actions of estrogen receptor beta (ERbeta) are mediated by a negative cross-talk with PPARgamma
Anna Foryst-Ludwig1, Markus Clemenz, Stephan Hohmann
1Center for Cardiovascular Research, Institute of Pharmacology, Charité-Universitätsmedizin Berlin, Berlin, Germany.
Abstract:
Estrogen receptors (ER) are important regulators of metabolic diseases such as obesity and insulin resistance (IR). While ERalpha seems to have a protective role in such diseases, the function of ERbeta is not clear. To characterize the metabolic function of ERbeta, we investigated its molecular interaction with a master regulator of insulin signaling/glucose metabolism, the PPARgamma, in vitro and in high-fat diet (HFD)-fed ERbeta -/- mice (betaERKO) mice. Our in vitro experiments showed that ERbeta inhibits ligand-mediated PPARgamma-transcriptional activity. That resulted in a blockade of PPARgamma-induced adipocytic gene expression and in decreased adipogenesis. Overexpression of nuclear coactivators such as SRC1 and TIF2 prevented the ERbeta-mediated inhibition of PPARgamma activity. Consistent with the in vitro data, we observed increased PPARgamma activity in gonadal fat from HFD-fed betaERKO mice. In consonance with enhanced PPARgamma activation, HFD-fed betaERKO mice showed increased body weight gain and fat mass in the presence of improved insulin sensitivity. To directly demonstrate the role of PPARgamma in HFD-fed betaERKO mice, PPARgamma signaling was disrupted by PPARgamma antisense oligonucleotide (ASO). Blockade of adipose PPARgamma by ASO reversed the phenotype of betaERKO mice with an impairment of insulin sensitization and glucose tolerance. Finally, binding of SRC1 and TIF2 to the PPARgamma-regulated adiponectin promoter was enhanced in gonadal fat from betaERKO mice indicating that the absence of ERbeta in adipose tissue results in exaggerated coactivator binding to a PPARgamma target promoter. Collectively, our data provide the first evidence that ERbeta-deficiency protects against diet-induced IR and glucose intolerance which involves an augmented PPARgamma signaling in adipose tissue. Moreover, our data suggest that the coactivators SRC1 and TIF2 are involved in this interaction. Impairment of insulin and glucose metabolism by ERbeta may have significant implications for our understanding of hormone receptor-dependent pathophysiology of metabolic diseases, and may be essential for the development of new ERbeta-selective agonists.
Insights
Estrogen receptor beta (ERbeta) deficiency protects against diet-induced obesity and insulin resistance. This occurs through enhanced PPARgamma signaling in adipose tissue, involving coactivators SRC1 and TIF2.
Area of Science:
- Endocrinology
- Metabolic Diseases
- Molecular Biology
Background:
- Estrogen receptors (ER) regulate metabolic diseases.
- ERalpha has a protective role, but ERbeta's function in metabolic diseases is unclear.
Purpose of the Study:
- To investigate the metabolic function of ERbeta by examining its interaction with PPARgamma.
- To characterize ERbeta's role in insulin signaling and glucose metabolism.
Main Methods:
- In vitro studies of ERbeta and PPARgamma interaction.
- High-fat diet (HFD)-fed ERbeta knockout (betaERKO) mice.
- PPARgamma signaling blockade using antisense oligonucleotide (ASO).
Main Results:
- ERbeta inhibits ligand-mediated PPARgamma activity in vitro.
- betaERKO mice exhibit increased PPARgamma activity, body weight, and fat mass, with improved insulin sensitivity.
- ASO-mediated blockade of PPARgamma reversed the protective phenotype in betaERKO mice.
- Enhanced coactivator (SRC1, TIF2) binding to PPARgamma target promoters in betaERKO mice.
Conclusions:
- ERbeta deficiency protects against diet-induced insulin resistance and glucose intolerance via augmented adipose PPARgamma signaling.
- Coactivators SRC1 and TIF2 are implicated in the ERbeta-PPARgamma interaction.
- ERbeta's role in impairing insulin and glucose metabolism has implications for metabolic disease pathophysiology and ERbeta-selective agonist development.
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